Narrowing substrate specificity in a directly evolved enzyme: The A293D mutant of aspartate aminotransferase

被引:25
作者
Chow, MA [1 ]
McElroy, KE [1 ]
Corbett, KD [1 ]
Berger, JM [1 ]
Kirsch, JF [1 ]
机构
[1] Univ Calif Berkeley, Dept Mol & Cell Biol, Berkeley, CA 94720 USA
关键词
D O I
10.1021/bi0487544
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Several mutant Escherichia coli aspartate aminotransferases (eAATases) have been characterized in the attempt to evolve or rationally redesign the substrate specificity of eAATase into that of E. coli tyrosine aminotransferase (eTATase). These include HEX (designed), HEX + A293D (design followed by directed evolution), and SRHEPT (directed evolution). The A293D mutation realized from directed evolution of HEX is here imported into the SRHEPT platform by site-directed mutagenesis, resulting in an enzyme (SRHEPT + A293D) with nearly the same ratio of k(cat)/K-m(Phe) to k(cat)/K-m(Asp) as that of wild-type eTATase. The A293D substitution is an important specificity determinant; it selectively disfavors interactions with dicarboxylic substrates and inhibitors compared to aromatic ones. Context dependence analysis is generalized to provide quantitative comparisons of a common substitution in two or more different protein scaffolds. High-resolution crystal structures of ligand complexes of HEX + A293D, SRHEPT, and SRHEPT + A293D were determined. We find that in both SRHEPT + A293D and HEX + A293D, the additional mutation holds the Arg 292 side chain away from the active site to allow increased specificity for phenylalanine over aspartate. The resulting movement of Arg 292 allows greater flexibility of the small domain in HEX + A293D. While HEX is always in the closed conformation, HEX + A293D is observed in both the closed and a novel open conformation, allowing for more rapid product release.
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页码:12780 / 12787
页数:8
相关论文
共 30 条
[21]   Enzyme redesign [J].
Penning, TM ;
Jez, JM .
CHEMICAL REVIEWS, 2001, 101 (10) :3027-3046
[22]   AMINO ACID POOL OF ESCHERICHIA-COLI DURING DIFFERENT PHASES OF GROWTH [J].
RAUNIO, R ;
ROSENQVIST, H .
ACTA CHEMICA SCANDINAVICA, 1970, 24 (08) :2737-+
[23]   Directed evolution relieves product inhibition and confers in vivo function to a rationally designed tyrosine aminotransferase [J].
Rothman, SC ;
Voorhies, M ;
Kirsch, JF .
PROTEIN SCIENCE, 2004, 13 (03) :763-772
[24]   How does an enzyme evolved in vitro compare to naturally occurring homologs possessing the targeted function?: Tyrosine aminotransferase from aspartate aminotransferase [J].
Rothman, SC ;
Kirsch, JF .
JOURNAL OF MOLECULAR BIOLOGY, 2003, 327 (03) :593-608
[25]  
ROTHMAN SC, 2003, THESIS U CALIFORNIA
[26]   Conversion of a PLP-dependent racemase into an aldolase by a single active site mutation [J].
Seebeck, FP ;
Hilvert, D .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (34) :10158-10159
[27]   Quantitative chimeric analysis of six specificity determinants that differentiate Escherichia coli aspartate from tyrosine aminotransferase [J].
Shaffer, WA ;
Luong, TN ;
Rothman, SC ;
Kirsch, JF .
PROTEIN SCIENCE, 2002, 11 (12) :2848-2859
[28]   Engineering a "methionine clamp" into Src family kinases enhances specificity toward unnatural ATP analogues [J].
Ulrich, SM ;
Kenski, DM ;
Shokat, KM .
BIOCHEMISTRY, 2003, 42 (26) :7915-7921
[29]   Use of TLS parameters to model anisotropic displacements in macromolecular refinement [J].
Winn, MD ;
Isupov, MN ;
Murshudov, GN .
ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY, 2001, 57 :122-133
[30]   Directed evolution of an aspartate aminotransferase with new substrate specificities [J].
Yano, T ;
Oue, S ;
Kagamiyama, H .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (10) :5511-5515